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I am new to perl, and can't seem to find answers about this anywhere. I narrowed down the problem to a recursive function. If I comment that out, then it works just fine without errors. I have:

use strict;
use warnings;

 sub GeneratePermutations{
    my($n, $nMax, $i, $ArrLength, @Arr) = @_;

    if($n == 0){
        $Arr[$i] = 0;

    my @qArr = ();
    my $rVal = 1; 
    for(my $p = 0; $p < @Arr; $p++){

        $rVal *= fac($Arr[$p]);

        for(my $q = 0; $q < $ArrLength; $q++){

        my $qCount = 0; 
        for(my $j = 0; $j < $ArrLength; $j++){ 

            if($Arr[$j] eq $q){

        $qArr[$i] = $qCount;
    my $qVal = 1;
    for(my $qNum = 0; $qNum < @qArr; $qNum++){
        $qVal *= fac($qArr[$qNum]);
    my $maxDistVal = 0;
    $maxDistVal = (1/($ArrLength**$ArrLength))*(fac($ArrLength)/$rVal)*(fac($ArrLength)/$qVal);

    if($maxDistVal > $distribution){
        $distribution = $maxDistVal;
    #prints out distributions for all permutations (comment out previous if-statement)
    print "Dist: " . $distribution . "<br /><br />";
    #return 1;
    my $resultCnt = 0;
    for(my $cnt = MinVal($nMax, $n); $cnt > 0; $cnt--){
    $Arr[$i] = $cnt;
    GeneratePermutations(int($n-$cnt), $cnt, $i+1, $ArrLength, @Arr);

    #return $resultCnt;
    return $distribution;


What am I missing?

share|improve this question
It's a warning, not an error. And we could help find where it's coming from if you post the full warning message, you know--the one that includes the operation (comparison, etc) and line number. – Dondi Michael Stroma Jul 2 '12 at 22:31
@Dondi Michael Stroma, I'm sure you mean "It's a warning, and it may not indicate an error", although it usually does. – ikegami Jul 2 '12 at 22:38
I don't get this warning, I get: Global symbol "$distribution" requires explicit package name at line 40. Global symbol "$distribution" requires explicit package name at line 41. Global symbol "$distribution" requires explicit package name at line 44. Global symbol "$distribution" requires explicit package name at line 55. Execution of aborted due to compilation errors. – ikegami Jul 2 '12 at 22:39
use of uninitialized value could refer to a great many things in this script. You need to check the line number, and what kind of statement it is, e.g. use of uninitialized value in multiplication. As it is, your question cannot be answered. – TLP Jul 2 '12 at 23:04
Hi, the full warning I get is: Use of uninitialized value $_[0] in numeric gt (>) at ./ line 239. This line actually refers to a different function altogether, but that function didn't have problems when I comment out the code above. I should add - the error is pointing to this: $_[0]>1?$_[0]*fac($_[0]-1):1; – Judy Jul 3 '12 at 21:44

3 Answers 3

If I had to guess I would say this is the problem: $qArr[$i] = $qCount;

Because you're only writing one element in @qArr repeatedly, and then later on reading elements 0 through $#qArr.

Did you mean $qArr[$p] = $qCount;? Or $qArr[$q] = $qCount;?

share|improve this answer

When You declare $distribution it will probably have to be outside of the subroutine as you need it to persist throughout the recursion.

share|improve this answer
up vote 0 down vote accepted

I started to comment out parts of my code and found that if I remove this portion, then the warnings disappear:

for(my $qNum = 0; $qNum < @qArr; $qNum++){
    $qVal *= fac($qArr[$qNum]);
share|improve this answer
Exactly. $qArr[$#qArr] (or the last element of @qArr) is defined, but the rest of the array is undefined. So some iterations of this for loop are going to attempt to call fac(undef), which will result in a warning. As I said in my answer above, there's a loop that looks like it might be intended to set all the elements in @qArr, but it only sets one of them. – craig65535 Jul 4 '12 at 21:54
Hmm, I'm not sure how? My first loop right after the if($n==0) sets the rest of the array elements to 0. When I do a print command, it prints out all of the arrays correctly. e.g. if n=5, I get: [5][0][0][0][0], [4][1][0][0][0], etc. – Judy Jul 5 '12 at 12:59
In the first loop you set the elements of $Arr[$i..$ArrLength-1] to 0 (not @qArr, but @Arr). That loop also increases $i, so after it executes, $i will be equal to $ArrLength (Incidentally, this is a strange way to use foreach). After that, you declare @qArr as a new, empty array, and only set one element, $qArr[$i]. So for example if $i is 3, @qArr will contain (undef, undef, undef, $qCount). – craig65535 Jul 5 '12 at 16:09
I see. Okay thanks! I'm not the best coder, so this might be a convoluted way to do it, but it's the only way I can figure out how to do it. :) – Judy Jul 6 '12 at 15:16

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